论文标题

各向异性三角形条上量子抗铁磁体的无间隙对称拓扑阶段

Gapless symmetry-protected topological phase of quantum antiferromagnets on anisotropic triangular strip

论文作者

Hidaka, Yuichiro, Furuya, Shunsuke C., Ueda, Atsushi, Tada, Yasuhiro

论文摘要

我们研究了三腿自旋1/2梯子,并具有几何沮丧的白痴相互作用。我们将此模型称为各向异性三角条纹(ATS)模型。从数值和理论上,我们表明其基态属于无间隙对称性保护拓扑(SPT)阶段。数值方法基于纠缠熵和纠缠谱的密度 - 矩阵重新归一化组分析。纠缠熵表现出临界行为,但纠缠频谱在非试图归化。这些纠缠特性暗示基态是无间隙拓扑阶段。我们使用量子场理论研究ATS模型以支持数值发现。当沮丧的链链相互作用被视为作用于三个旋转链的扰动时,沮丧的链相互作用几乎将第二链与其他两个链分离出来。但是,与此同时,第二链介导了第一链和第三链之间的铁磁相互作用。因此,ATS模型的基态是一种无间隙的tomonaga-luttinger液体,该液体弱耦合到具有无关相互作用的Spin-1 Haldane链。最后但并非最不重要的一点是,我们表明ATS模型的无间隙SPT阶段是对称性保护的临界阶段。我们指出,对临界的对称性保护对于表征无间隙SPT阶段至关重要。

We study a three-leg spin-1/2 ladder with geometrically frustrated interleg interactions. We call this model an anisotropic triangular-strip (ATS) model. We numerically and field-theoretically show that its ground state belongs to a gapless symmetry-protected topological (SPT) phase. The numerical approach is based on density-matrix renormalization group analyses of the entanglement entropy and the entanglement spectrum. Whereas the entanglement entropy exhibits a critical behavior, the entanglement spectrum is nontrivially degenerate. These entanglement properties imply that the ground state is a gapless topological phase. We investigate the ATS model using a quantum field theory to support the numerical findings. When the frustrated interchain interaction is deemed a perturbation acting on the three spin chains, the frustrated interchain interaction almost isolates the second chain from the other two chains. However, at the same time, the second chain mediates a ferromagnetic interaction between the first and third chains. Therefore, the ground state of the ATS model is a gapless Tomonaga-Luttinger liquid weakly coupled to a spin-1 Haldane chain with irrelevant interactions. Last but not least, we show that the gapless SPT phase of the ATS model is a symmetry-protected critical phase. We point out that the symmetry protection of criticality is essential in characterization of the gapless SPT phase.

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